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Development, analysis and life cycle assessment of integrated systems for hydrogen production based on the copper-chlorine (Cu-Cl) cycle.

机译:基于铜-氯(Cu-Cl)循环的制氢综合系统的开发,分析和生命周期评估。

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摘要

The energy carrier hydrogen is expected to help solve many energy challenges we are facing today. Thermochemical water splitting using a Cu-Cl cycle, linked with renewable energy sources and/or the Generation IV nuclear super-critical water cooled reactor (SCWR), is a promising option for hydrogen production. The University of Ontario Institute of Technology (UOIT), Clean Energy Research Lab (CERL) has a research team working on the Cu-Cl hydrogen production cycle to demonstrate the process at the lab scale. This study aims to contribute to the development of hydrogen production using the Cu-Cl cycle by developing integrated multi-generation systems.;Second, in the analysis section, the Aspen Plus process simulation package is used to evaluate the characteristics of the entire cycle in terms of energy, exergy and cost effectiveness, to support the ultimate development of a pilot plant. Alternative designs for the heat exchanger network using Aspen Energy Analyzer are studied for better thermal management. The Aspen Plus simulation results for the four-step Cu-Cl cycle illustrate that the steam to copper molar ratio can be reduced to 10 from an initial value of 16 by decreasing the pressure of the hydrolysis reactor. Thermodynamic, economic and environmental analyses are then conducted for the simulated four-step Cu-Cl cycle using various engineering tools: exergy, cost analyses, life cycle assessment and exergoenvironmental and exergoeconomic analyses. Based on the conducted research for the studied system under the baseline conditions, the total cost rate and environmental impact rate are determined to be 165 ;Third, the optimized four-step Cu-Cl cycle is integrated with the novel multi-generation systems. Exergy and exergoeconomic analyses and exergetic life cycle assessment are conducted for the multi-generation systems. Multi-objective optimizations of the present integrated systems are also performed. Multi-objective optimization results show that exergy efficiencies are 45.8%, 45.3% and 46.7% for the three integrated multi-generation systems for hydrogen production. Corresponding energy efficiencies are calculated to be 76.4%, 67.4% and 81.2%, respectively, considering that rejected heat from the systems are utilized as hot water and drying air.;There are three key elements of the study. First, the Cu-Cl based integrated systems are developed for multi-generation. System I has a solar tower with molten salt energy storage integrated with a steam turbine, organic Rankine cycle and a LiBr-H2O absorption cooling system. System II consists of a Generation IV SCWR integrated with the Cu-Cl cycle and a LiBr-H 2O absorption cooling system. System III has a solar tower with molten salt energy storage integrated with the Cu-Cl cycle, LiBr-H2O absorption cooling system and a gas steam combined cycle. All three systems discussed in this thesis produce hydrogen as the main output. All the systems also have the capability of generating electricity and providing cooling, hot water and drying air. A novel configuration of the four-step Cu-Cl cycle is modeled in order to better understand and improve system performance and efficiency.
机译:氢能有望帮助解决我们今天面临的许多能源挑战。与可再生能源和/或第四代核超临界水冷反应堆(SCWR)相连的,使用Cu-Cl循环进行热化学水分解是一种有前途的制氢选择。安大略大学技术学院(UOIT)的清洁能源研究实验室(CERL)拥有一个研究小组,致力于研究Cu-Cl氢的生产周期,以在实验室规模上演示该过程。这项研究旨在通过开发集成的多代系统为利用Cu-Cl循环开发制氢做出贡献。其次,在分析部分,使用Aspen Plus工艺模拟软件包评估了整个循环过程的特性。能源,火用和成本效益方面,以支持试验工厂的最终发展。研究了使用Aspen Energy Analyzer进行换热网络的替代设计,以实现更好的热管理。四步Cu-Cl循环的Aspen Plus模拟结果表明,通过降低水解反应器的压力,蒸汽与铜的摩尔比可以从初始值16降低到10。然后使用各种工程工具对模拟的四步式Cu-Cl循环进行热力学,经济和环境分析:火用,成本分析,生命周期评估以及环境,环境和经济分析。在基线条件下对所研究系统进行的研究基础上,总成本率和环境影响率确定为165;第三,将优化的四步Cu-Cl循环与新型多代系统集成。对多代系统进行了火用和能效经济分析以及能效生命周期评估。还执行了本集成系统的多目标优化。多目标优化结果表明,三个集成的多代制氢系统的火用效率分别为45.8%,45.3%和46.7%。考虑到系统排出的热量被用作热水和干燥空气,相应的能源效率分别为76.4%,67.4%和81.2%。研究有三个关键要素。首先,开发基于Cu-Cl的集成系统以实现多代发电。系统I具有带熔融盐能量存储的太阳能塔,该蒸汽塔与蒸汽轮机,有机朗肯循环和LiBr-H2O吸收式冷却系统集成在一起。系统II由与Cu-Cl循环集成的IV世代SCWR和LiBr-H 2O吸收冷却系统组成。系统III具有一个太阳能塔,该塔具有与Cu-Cl循环,LiBr-H2O吸收冷却系统和燃气蒸汽联合循环集成的熔盐储能。本文讨论的所有三个系统均以氢为主要输出。所有系统还具有发电能力,并提供冷却,热水和干燥空气。为了更好地理解和提高系统性能和效率,对四步Cu-Cl循环的新型配置进行了建模。

著录项

  • 作者

    Ozbilen, Ahmet Z.;

  • 作者单位

    University of Ontario Institute of Technology (Canada).;

  • 授予单位 University of Ontario Institute of Technology (Canada).;
  • 学科 Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2013
  • 页码 248 p.
  • 总页数 248
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:40:56

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